首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Entrapment of polysulfides by Al2O3 modified separator for high energy Li-S redox flow batteries
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Entrapment of polysulfides by Al2O3 modified separator for high energy Li-S redox flow batteries

机译:用Al2O3改性分离器对高能LI-S氧化还原电池的捕获量夹杂物

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Although the lithium-sulfur redox flow batteries (Li-S RFBs) are promising candidates for large-scale energy storage application because of outstanding solubility of long-chain polysulfides and low cost of sulfur. Their implementation has been impeded by multiple challenges, especially the dissolution of intermediate lithium polysulfide (Li2Sx) species into the electrolyte. Here, Al2O3 particles decorated polypropylene separator (PP-Al2O3) was investigated. The results show that the thermal stability and the electrolyte wettability of the PP-Al2O3 separator are improved obviously. When the PP-Al2O3 separator is used for Li-S RFB, the cyclic stability and rate capability of the battery are enhanced. The PP-Al2O3 separators are effective in improving the initial discharge capacity of Li-S RFBs from 27.5 to 91.5 mAh g(-1) at 6.25 mA cm(-2). The reason could be ascribed to that the polar Al2O3 coating not only alleviates the shuttle effect by chemical interaction and physical barrier, but also facilitates Li-ion migration by favorable electrolyte wettability. In addition, theoretical calculations reveal that chemical bonds are formed between Al2O3 and Li2Sx. This work provides the rational design strategy for functional separators at cell scale to effective utilizing of active sulfur and retarding of polysulfides, which offers the possibility of high energy density Li-S RFBs with long cycling life. (C) 2018 Elsevier B.V. All rights reserved.
机译:虽然锂硫磺氧化还原电池(Li-S RFB)是大型储能应用的承诺候选者,因为长链多硫化物的突出性和硫成本低的溶解度。它们的实施已经受到多种挑战的影响,特别是中间锂多硫化物(Li2SX)物种溶解到电解质中的溶解。这里,研究了Al2O3颗粒装饰聚丙烯分离器(PP-AL2O3)。结果表明,PP-Al2O3分离器的热稳定性和电解质润湿性明显提高。当PP-Al2O3分离器用于LI-S RFB时,增加电池的循环稳定性和速率能力。 PP-Al2O3分离器有效地将Li-S RFB的初始放电容量从27.5至91.5mAhg(-1)改善为6.25 mA cm(-2)。原因可以归因于极性Al2O3涂层不仅通过化学相互作用和物理屏障减轻了梭效果,而且还通过良好的电解质润湿性促进锂离子迁移。此外,理论计算表明,在Al 2 O 3和Li 2 Sx之间形成化学键。这项工作为细胞标度的功能分离器提供了合理的设计策略,以有效利用活性硫和多硫化物延迟,这提供了具有长循环寿命的高能量密度Li-S RFB的可能性。 (c)2018年elestvier b.v.保留所有权利。

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